Runs Cantera homogeneous chemical reactors and evaluates ignition delay with mechanism provenance, conservation checks, and numerical refinement. Use for combustion kinetics, closed adiabatic ideal-gas constant-volume or constant-pressure ignition, temperature histories, or mechanism-specific ignition-delay comparisons.
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Use for a closed, adiabatic, homogeneous ideal-gas reactor with a known kinetic mechanism, initial temperature, pressure, and mole composition. The bundled helper runs both constant volume and constant pressure cases and reports a precisely defined temperature-based delay. It is not a flame solver or a general reactor-network builder.
A calculation completing successfully establishes numerical execution, not mechanism validity for the fuel, pressure, temperature, diluent, or measured ignition observable. Read references/interpretation.md when choosing a mechanism, comparing experiments, or interpreting unresolved/two-stage ignition.
ideal-gas and that every
reactant, diluent, and tracked species exists. For custom YAML with imports, retain the
original dependency files as well as the generated phase snapshot. Custom Python rate
extensions additionally need their original code and environment for replay.mole_amounts is normalized to mole fractions;
it is not a mass-fraction mapping. The report includes the normalized initial composition.h2o2.yaml for an executable numerical
example; it is not a recommendation for every hydrogen experiment.From the collection root:
uv run --no-project --python 3.12 --with cantera==3.2.0 --with numpy==2.5.3 \
python skills/cantera/scripts/ignition_delay.py \
skills/cantera/assets/hydrogen-ignition.json hydrogen-resultTested on Python 3.12, Cantera 3.2.0, and NumPy 2.5.3. No external solver executable or credentials are needed. Local relative mechanism paths resolve against the configuration file directory before Cantera's built-in data search. Use a new output directory each run.
The 1000 K, 101325 Pa, H2:O2:Ar = 2:1:7 constant-volume example gives about 0.313 ms
using the stated max(dT/dt) definition. At 3 ms its temperature is approximately
2920.67 K and agrees with a separate UV equilibrium calculation. These are package
regression values, not experimental validation data.
Delay is the time of the global maximum of numpy.gradient(T, time, edge_order=2) on
a uniform output grid. It is reported only if the maximum temperature rise reaches
minimum_temperature_rise_k and the maximum is at least two sample indices from each
boundary. Otherwise delay_s is null and a status explains why. No delay beyond the
simulation horizon is extrapolated.
The helper explicitly uses Cantera 3.2's clone=True and reads evolving properties from
reactor.phase. The original Solution retains the initial state; do not read it as
the reactor's final state. ReactorNet.advance(t) requests an absolute time, and no
advance limits are configured, so the output grid remains uniform.
It runs four independent fresh reactors:
| Run | Change from configured conditions |
|---|---|
| baseline | Original settings |
| finer_output | Half output spacing, same horizon and solver controls |
| tighter_solver | Both solver tolerances divided by ten; maximum internal time step halved |
| longer_horizon | Twice the horizon with the original output spacing |
numerically_resolved requires all runs to yield delays, relative delay changes within
delay_relative_tolerance, and all conservation checks to pass. Agreement on a discrete
grid is not a statistical error bar: also report the output spacing. The baseline samples
must be between 11 and 50000, leaving room for refinement. Runtime grows with mechanism
size, stiffness, and the chosen horizon; integration failures retain Cantera's error text.
report.json: all input settings, package versions, configuration and mechanism hashes,
normalized starting composition, four delay estimates, numerical changes, conservation,
and mechanism thermodynamic temperature bounds.baseline.csv, finer_output.csv, tighter_solver.csv, longer_horizon.csv: time,
temperature, pressure, volume, mass, total internal energy, total enthalpy, and requested
species mole fractions.mechanism.yaml: a Cantera-written snapshot of the loaded phase, species, and reactions.
The helper requests write_yaml(precision=17) and saves the exact UTF-8 bytes it hashes,
without platform newline conversion. The report also hashes the located original
mechanism file. Imported source dependencies are not separately hashed; the snapshot
captures the loaded model. Its generated header includes a date, so the snapshot hash
identifies the saved artifact and need not match between otherwise identical reruns.Closed reactors conserve mass and elemental mass fractions. The constant-volume case
checks total internal energy; the constant-pressure case checks total enthalpy. Energy
error is divided by max(abs(initial_energy_J), 1 J). Diagnostic tolerances are mass
relative drift <1e-8, elemental absolute drift <1e-8, energy scaled drift <1e-6, species
mass-fraction sum error <1e-8, and species mass fractions >-1e-10. These checks expose
numerical issues and do not measure kinetic-model uncertainty.
Check within_thermo_temperature_range separately: it checks saved output states, not
every internal integration state. Numerical resolution does not mean species thermodynamic
fits stayed within their temperature bounds. The helper cannot assess pressure-dependent
kinetic validity from these bounds.
The suite covers both reactor constraints, conservation, final-state agreement with independent Cantera equilibrium, nonigniting conditions, unresolved boundary maxima, refinement, snapshot replay, and invalid composition/conditions. It does not validate shock-tube heat loss, real-gas effects, surfaces, flow devices, flames, or multistage experimental ignition definitions. Build those models only with the necessary physics and their own checks; do not relabel this helper's result as one of them.
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